Kundu Anirban, Dutta Anirudha, Biswas Poulomi, Das Amit Kumar, Ghosh Ananta Kumar
Department of Biotechnology, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.
Department of Biotechnology, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.
J Mol Graph Model. 2015 Sep;61:160-74. doi: 10.1016/j.jmgm.2015.07.002. Epub 2015 Jul 26.
Antheraea mylitta cytoplasmic polyhedrosis virus (AmCPV) contains 11 double stranded RNA genome segments and infects tasar silkworm A. mylitta. RNA-dependent RNA polymerase (RdRp) is reported as a key enzyme responsible for propagation of the virus in the host cell but its structure function relationship still remains elusive. Here a computational approach has been taken to compare sequence and secondary structure of AmCPV RdRp with other viral RdRps to identify consensus motifs. Then a reliable pairwise sequence alignment of AmCPV RdRp with its closest sequence structure homologue λ3 RdRp is done to predict three dimensional structure of AmCPV RdRp. After comparing with other structurally known viral RdRps, important sequence and/or structural features involved in substrate entry or binding, polymerase reaction and the product release events have been identified. A conserved RNA pentanucleotide (5'-AGAGC-3') at the 3'-end of virus genome is predicted as cis-acting signal for RNA synthesis and its docking and simulation study along with the model of AmCPV RdRp has allowed to predict mode of template binding by the viral polymerase. It is found that template RNA enters into the catalytic center through nine sequence-independent and two sequence-dependent interactions with the specific amino acid residues. However, number of sequence dependent interactions remains almost same during 10 nano-second simulation time while total number of interactions decreases. Further, docking of N(7)-methyl-GpppG (mRNA cap) on the model as well as prediction of RNA secondary structure has shown the template entry process in the active site. These findings have led to postulate the mechanism of RNA-dependent RNA polymerization process by AmCPV RdRp. To our knowledge, this is the first report to evaluate structure function relationship of a cypoviral RdRp.
蓖麻蚕细胞质多角体病毒(AmCPV)含有11个双链RNA基因组片段,可感染柞蚕。据报道,RNA依赖性RNA聚合酶(RdRp)是负责病毒在宿主细胞中繁殖的关键酶,但其结构与功能的关系仍不清楚。本文采用一种计算方法,将AmCPV RdRp的序列和二级结构与其他病毒的RdRp进行比较,以确定共有基序。然后,将AmCPV RdRp与其最接近的序列结构同源物λ3 RdRp进行可靠的成对序列比对,以预测AmCPV RdRp的三维结构。与其他结构已知的病毒RdRp比较后,确定了参与底物进入或结合、聚合酶反应和产物释放事件的重要序列和/或结构特征。预测病毒基因组3'端保守的RNA五核苷酸(5'-AGAGC-3')为RNA合成的顺式作用信号,其与AmCPV RdRp模型的对接和模拟研究有助于预测病毒聚合酶与模板的结合模式。发现模板RNA通过与特定氨基酸残基的9种序列非依赖性和2种序列依赖性相互作用进入催化中心。然而,在10纳秒的模拟时间内,序列依赖性相互作用的数量几乎保持不变,而相互作用的总数减少。此外,N(7)-甲基-GpppG(mRNA帽)在模型上的对接以及RNA二级结构的预测显示了模板在活性位点的进入过程。这些发现有助于推测AmCPV RdRp的RNA依赖性RNA聚合过程的机制。据我们所知,这是第一份评估杯状病毒RdRp结构与功能关系的报告。